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Molecular and genetic studies characterizing the role of ninaG in chromophore biogenesis, role of rhodopsin in maintenance of photoreceptor cell structure, and genome-wide transcript changes during norpA retinal degeneration in Drosophila.

机译:分子和遗传学研究表征了ninaG在发色团生物发生中的作用,视紫红质在维持感光细胞结构中的作用以及果蝇norpA视网膜变性期间全基因组转录物的变化。

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摘要

The work presented in this dissertation describes the following studies:; 1. The role of ninaG in visual pigment chromophore biogenesis. The Drosophila NinaG oxidoreductase mutant flies are characterized by low levels of Rh1 rhodopsin but have normal levels of minor opsins, Rh4 and Rh6. ninaG mutants ectopically expressing Rh4 as the major rhodopsin accumulate an anomalous retinoid, identified as 3-hydroxyretinol by HPLC-UV/VIS-MS analysis. Further, ninaG mutants fed on retinal as the sole chromophore precursor are able to synthesize 3-hydroxyretinoids. Thus, NinaG oxidoreductase acts subsequent to the hydroxylation step in the biogenesis of rhodopsin chromophore, (3S)-3-hydroxyretinol.; 2. Heterologous expression of bovine rhodopsin in Drosophila photoreceptor cells. Vertebrate and invertebrate rhodopsins are similar in amino acid sequence, structural organization, spectral properties, and mode of action, but bind different chromophores and trigger phototransduction through distinct pathways. Transgenic Drosophila expressing bovine rhodopsin were created to compare and contrast properties of bovine and Drosophila rhodopsin with respect to maturation (glycosylation, chromophore binding, and folding), trafficking, physiology (light response), and photoreceptor cell morphology. This analysis establishes Drosophila photoreceptor cells as a valuable model to study vertebrate and invertebrate visual pigments in a common cell type.; 3. Rh1 cytoplasmic tail and non-cytoplasmic interface domains play a structural role in development and integrity of rhabdomeres. Rh1 expression is essential for the structural development of rhabdomeres in photoreceptor cells. Flies expressing bovine rhodopsin (Rho) show severe disintegration of rhabdomeres 7-10 days post-eclosion. A series of Rh1-Rho chimera were expressed to show that both Rh1 cytoplasmic-tail and non-cytoplasmic-interface domains are essential for the structural development and maintenance of rhabdomeres.; 4. Genome-wide transcript analysis during norpA retinal degeneration. Drosophila norpA mutants show rapid light-dependent retinal degeneration. Among 13,000 genes present on the genome chip, 300 genes showed significant changes in transcript levels during the degeneration process. One of the downregulated genes was I, that when mutated cause light-dependent retinal degeneration due to accumulation of activated rhodopsin. norpA; sun double-mutants showed faster retinal degeneration rate than single-mutants, suggesting that downregulation of sun transcript in norpA mutants contributes towards the attainment of retinal degeneration. Large-scale changes in transcript levels of known apoptotic genes were not observed thereby suggesting that apoptotic genes are not transcriptionally regulated during norpA retinal degeneration.
机译:本文的工作描述了以下研究: 1. ninaG在视觉色素生色团生物发生中的作用。果蝇NinaG氧化还原酶突变果蝇的特点是低水平的Rh1视紫红质,但正常水平的次要视蛋白Rh4和Rh6。异位表达Rh4作为主要视紫红质的ninaG突变体积累了异常的类视色素,通过HPLC-UV / VIS-MS分析鉴定为3-羟基视黄醇。此外,以视网膜为唯一生色团前体的ninaG突变体能够合成3-羟基类维生素A。因此,在视紫红质生色团(3S)-3-羟基视黄醇的生物发生中的羟基化步骤之后,NinaG氧化还原酶起作用。 2.牛视紫红质在果蝇感光细胞中的异源表达。脊椎动物和无脊椎动物的视紫红质在氨基酸序列,结构组织,光谱特性和作用方式方面相似,但结合不同的发色团并通过不同的途径触发光转导。创建表达牛视紫红质的转基因果蝇来比较和对比牛和果蝇视紫红质在成熟度(糖基化,发色团结合和折叠),运输,生理学(光响应)和感光细胞形态方面的特性。该分析将果蝇感光细胞建立为研究常见细胞类型的脊椎动物和无脊椎动物视觉色素的有价值模型。 3. Rh1胞质尾和非胞质界面结构域在横纹的发育和完整性中起结构作用。 Rh1表达对于感光细胞中横纹肌的结构发育至关重要。表达牛视紫红质(Rho)的苍蝇在分离后7-10天显示出横纹肌严重崩解。表达了一系列Rh1-Rho嵌合体,显示Rh1胞质尾和非胞质界面结构域对于横纹肌的结构发育和维持都是必不可少的。 4. norpA视网膜变性期间的全基因组转录本分析。果蝇norpA突变体显示快速的光依赖性视网膜变性。在基因组芯片上存在的13,000个基因中,有300个基因在变性过程中表现出显着的转录水平变化。下调的基因之一是I,当突变时,由于活化的视紫红质的积累,会引起光依赖性视网膜变性。 norpA;太阳双突变体显示的视网膜变性速度比单突变体快,这表明norpA突变体中太阳转录的下调有助于实现视网膜变性。没有观察到已知凋亡基因的转录水平的大规模变化,从而表明凋亡基因在norpA视网膜变性期间不受转录调控。

著录项

  • 作者

    Ahmad, Syed Tariq.;

  • 作者单位

    University of Notre Dame.;

  • 授予单位 University of Notre Dame.;
  • 学科 Biology Neuroscience.; Biology Genetics.; Biology Molecular.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 198 p.
  • 总页数 198
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 神经科学;遗传学;分子遗传学;
  • 关键词

  • 入库时间 2022-08-17 11:42:26

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